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Synergistic adsorption of Cd(II) with sulfate/phosphate on ferrihydrite: An in situ ATR-FTIR/2D-COS study

机译:CD(II)与硫酸盐/磷酸盐对Ferrihydrite的协同吸附:原位ATR-FTIR / 2D-COS研究

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摘要

Elucidation of the co-adsorption characteristics of heavy metal cations and oxyanions on (oxyhydr)oxides can help to better understand their distribution and transformation in many geological settings. In this work, batch adsorption experiments in combination with in situ attenuated total reflectance Fourier transform infrared spectroscopy (ATR-FTIR) were applied to explore the interaction mechanisms of Cd(II) with sulfate or phosphate at the ferrihydrite (Fh)–water interface, and the two-dimensional correlation spectroscopic analysis (2D–COS) was used to enhance the resolution of ATR-FTIR bands and the accuracy of analysis. The batch adsorption experiments showed enhanced adsorption of both sulfate (S) and phosphate (P) on Fh when co-adsorbed with Cd(II); additionally, the desorbed percentages of Cd(II) were much lower in the P + Cd adsorption systems than those in the S + Cd adsorption systems. The spectroscopic results suggested that in the single adsorption systems, sulfate primarily adsorbed as outer-sphere complexes with a small amount of bidentate inner-sphere complexes, while the dominant adsorbed species of phosphate were largely the bidentate nonprotonated inner-sphere complexes, although there was significant pH-dependence. In the co-adsorption systems, the synergistic adsorption of Cd(II) and sulfate was dominantly attributed to the electrostatic interaction, as well as the formation of Fe–Cd–S (i.e., Cd-bridged) ternary complexes. In contrast, Fe–P–Cd (i.e., phosphate-bridged) ternary complexes were found in all of the co-adsorption systems of phosphate and Cd(II); furthermore, electrostatic interaction should also contribute to the co-adsorption process. Our results show that in situ ATR-FTIR in combination with 2D–COS can be an efficient tool in analyzing the co-adsorption mechanisms of anions and heavy metal cations on iron (oxyhydr)oxides in ternary adsorption systems. The co-existence of Cd(II) with sulfate or phosphate can be beneficial for their accumulations on Fh, and phosphate is more efficient than sulfate for the long-term immobilization of Cd(II).
机译:阐明重金属阳离子和氧气的共吸收特性(Oxyhydr)氧化物可以帮助更好地了解它们在许多地质环境中的分布和转化。在这项工作中,批量吸附实验与原位衰减的总反射率傅里叶变换红外光谱(ATR-FTIR)组合用于探讨CD(II)与硫酸盐(FH)-WATEL界面处的CD(II)的相互作用机制,二维相关光谱分析(2D-COS)用于增强ATR-FTIR带的分辨率和分析的准确性。批量吸附实验表明,当与CD(II)共吸收时,在FH上提高了硫酸盐和磷酸盐(P)的吸附;另外,P + Cd吸附系统中的去吸收百分比比S + Cd吸附系统中的含量远低得多。光谱结果表明,在单一吸附系统中,硫酸盐主要吸附为具有少量的双齿内球复合物的外球络合物,而磷酸的主要吸附物质主要是双齿非容的内球络合物,尽管存在显着的pH依赖。在共吸附系统,镉(II)和硫酸的协同吸附显性归因于静电相互作用,以及铁镉-S的形成(即,CD-桥接)的三元复合物。相比之下,在磷酸盐和Cd(II)的所有共吸收系统中发现Fe-P-CD(即磷酸盐桥接)三元复合物;此外,静电相互作用也应该有助于共吸附过程。我们的研究结果表明,原位ATR-FTIR与2D-COS相结合,可以是分析三元吸附系统中铁(氧水)氧化物上的阴离子和重金属阳离子的共吸收机制的有效工具。镉(II)和硫酸或磷酸的共存可以是用于其上积累Fh的有益的,和磷酸盐是比硫酸镉的长期固定化(II)更有效。

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